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1. Bern¨¢t G, et al. 2017. On the origin of the slow M¨CT chlorophyll a luorescence decline in cyanobacteria: interplay of short-term light-responses. Photosynthesis Research, DOI 10.1007/s11120-017-0458-8
2. Selyanin V, et al. 2016. The variability of light-harvesting complexes in aerobic anoxygenic phototrophs. Photosynthesis research, 128(1): 35-43
3. Tilstone G, et al. 2016. Effect of CO2 enrichment on phytoplankton photosynthesis in the North Atlantic sub-tropical gyre. Progress in Oceanography, 158: 76-89
4. Mishra K B, et al. 2016. Plant phenotyping: a perspective. Indian Journal of Plant Physiology, 21(4): 514-527
5. Cheregi O, Kotabov¨¢ E, Pr¨¢?il O, et al. 2015. Presence of state transitions in the cryptophyte alga Guillardia theta . Journal of Experimental Botany, 66: 6461-6470
6. Li G, Brown C M, Jeans J A, et al. 2015. The nitrogen costs of photosynthesis in a diatom under current and future pCO2. New Phytologist, 205:533-543
7. Kotabov¨¢ E, Jare?ov¨¢ J, Ka¨¾a R, et al. 2014. Novel type of red-shifted chlorophyll a antenna complex from Chromera velia. I. Physiological relevance and functional connection to photosystems. Biochimica et Biophysica Acta ¨C Bioenergetics, 1837:734-743
8. ?ebela D, Olejn¨ª?kov¨¢ J, Sotol¨¢? R, et al. 2014. The slow S to M fluorescence rise in cyanobacteria is due to a state 2 to state 1 transition. BBA , 1817: 1237-1247
9. Peng H, et al. 2013. Toxicity and De?ciency of Copper in Elsholtzia splendens A?ect Photosynthesis Biophysics, Pigments and Metal Accumulation. Environ. Sci. Technol., 47 (12): 6120-6128
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